The evolution of mechanical actuation: from conventional actuators to artificial muscles

被引:38
作者
Greco, Carlo [1 ]
Kotak, Parth [2 ]
Pagnotta, Leonardo [1 ]
Lamuta, Caterina [2 ]
机构
[1] Univ Calabria, Dept Mech Energy & Management Engn DIMEG, Arcavacata Di Rende, Italy
[2] Univ Iowa, Dept Mech Engn, Iowa City, IA 52242 USA
关键词
Actuators; skeletal muscles; artificial muscles; smart materials; working mechanism; specific power; robotics; soft robotics; POLYMER-METAL COMPOSITES; SHAPE-MEMORY POLYMERS; LIQUID-CRYSTAL ELASTOMER; DIELECTRIC ELASTOMER; POLYPYRROLE; DRIVEN; DESIGN; ALLOYS; SOFT; PERFORMANCE;
D O I
10.1080/09506608.2021.1971428
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Mechanical actuators are defined as mechanical devices that convert an input energy into motion. Since the 1990s, advancements in the fields of robotics and automation have produced a critical need for the development of lightweight and efficient actuators capable of human-like motion. In the past few decades, extensive research activities in the fields of materials science and smart materials have led to the development of a novel type of actuator known as artificial muscles. This review paper describes the evolution of mechanical actuators from conventional technologies such as electric, hydraulic, and pneumatic actuators, to bioinspired artificial muscles. The working mechanism, manufacturing process, performance, and applications of different artificial muscles are described and compared with those of conventional actuators. Details on the cost, input sources, activation modes, advantages, and drawbacks of each artificial muscle technology are also provided to guide the reader through the intricate selection process of the best-suited actuator for a specific application.
引用
收藏
页码:575 / 619
页数:45
相关论文
共 299 条
  • [41] Cheng CC, 19 WORLD C NONDESTR, P2
  • [42] Experimental characterization of thermally-activated artificial muscles based on coiled nylon fishing lines
    Cherubini, Antonello
    Moretti, Giacomo
    Vertechy, Rocco
    Fontana, Marco
    [J]. AIP ADVANCES, 2015, 5 (06):
  • [43] Chicago U, 2010, BASICS ELECT MOTORS, V11, P1
  • [44] Childs PRN, 2014, MECHANICAL DESIGN ENGINEERING HANDBOOK, P735, DOI 10.1016/B978-0-08-097759-1.00018-6
  • [45] Piezoelectric Biomaterials for Sensors and Actuators
    Chorsi, Meysam T.
    Curry, Eli J.
    Chorsi, Hamid T.
    Das, Ritopa
    Baroody, Jeffrey
    Purohit, Prashant K.
    Ilies, Horea
    Nguyen, Thanh D.
    [J]. ADVANCED MATERIALS, 2019, 31 (01)
  • [46] Measurement and modeling of McKibben pneumatic artificial muscles
    Chou, CP
    Hannaford, B
    [J]. IEEE TRANSACTIONS ON ROBOTICS AND AUTOMATION, 1996, 12 (01): : 90 - 102
  • [47] Cimpoesu Iulian, 2012, International Journal of Modern Manufacturing Technologies, V4, P35
  • [48] New Design of a Soft Robotics Wearable Elbow Exoskeleton Based on Shape Memory Alloy Wire Actuators
    Copaci, Dorin
    Cano, Enrique
    Moreno, Luis
    Blanco, Dolores
    [J]. APPLIED BIONICS AND BIOMECHANICS, 2017, 2017
  • [49] D'Ambrogio W, 2018, INT J MECH ENG TECHN, DOI [10.1038/s41467-017-00685-3, DOI 10.1038/S41467-017-00685-3]
  • [50] Daerden F, 2001, IEEE ASME INT C ADV, P738, DOI 10.1109/AIM.2001.936758